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Energy Systems for Multigeneration Purposes

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Energy Systems for Multigeneration Purposes ( energy-systems-multigeneration-purposes )

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Table 6.14: Parameter values resulting from energy and exergy analyses of the system. Parameters ̇ (kW) Value Net power output, Exergy efficiency, Ѱ (%) Sustainability Index, SI Total exergy destruction rate, Hydrogen production rate, ̇ Cooling load (kW) Fresh water mass flow rate (kg/s) 0.23 72.49 0.37 1.29 ̇ (kW) 1351 (kg/hr) 0.26 105 Total cost rate ($/h) PEM electrolyzer exergy efficiency, ѰPEM (%) 56.32 176.35 Warm surface pump power, Cold surface pump power, Working fluid pump power, ̇ (kW) 1.39 (kW) 3.34 ( ) 1.12 ̇ ̇ Fig. 6.79 shows the dimensionless exergy destruction ratio for each component. This measure is useful for prioritizing exergy losses in an intuitive manner. Both exergy destruction and the dimensionless exergy destruction ratio are higher in solar collectors than in any other component, suggesting that it would likely be worthwhile to focus improvement efforts on this component. Moreover, the results show that, the absorption cycle and RO desalination unit do not exhibit significant exergy destructions, since it does not directly utilize fuel energy but uses heat produced by the PV/T and work instead. 6.4.2.1 Effect of PV/T parameters on collector performance In order to enhance the understanding of the system, the effect of certain major PV/T design parameters on the PV/T system performance are investigated in this section. Fig. 6.80 shows the effect of inlet air mass flow rate on the exergy efficiency of the PV/T collector. It is observed that, at constant collector length, an increase in the inlet air mass flow rate results in an increase in exergy efficiency of the collector to a certain value and reaches to its maximum value and decreases thereafter. 190

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